Two-parameter dynamics and multistability of a non-smooth railway wheelset system with dry friction damping.

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2024-11-01 DOI:10.1063/5.0231126
Pengcheng Miao, Denghui Li, Yuan Yue
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Abstract

A deep understanding of non-smooth dynamics of vehicle systems, particularly with dry friction damping offer valuable insights into the design and optimization of railway vehicle systems, ultimately enhancing the safety and reliability of railway operations. In this paper, the two-parameter dynamics of a non-smooth railway wheelset system incorporating dry friction damping are investigated. The effect of the crucial parameters on the complexity of the evolution process is comprehensively exposed by identifying different dynamic responses in the two-parameter plane. In addition, the multistability and the various routes transition to chaos for the system are also discussed. It is found that dry friction induces highly complex dynamics in the system, encompassing a range of behaviors such as periodic, quasi-periodic, and chaotic motions. These intricate dynamics are a direct result of the interplay between multiple parameters, such as speed and damping coefficients, which are critical in determining the system's stability and performance. The presence of multistability further complicates the system, resulting in unpredictable transitions between different motion states.

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带干摩擦阻尼的非光滑铁路轮对系统的双参数动力学和多稳定性。
深入了解车辆系统的非光滑动力学,特别是干摩擦阻尼,可为铁路车辆系统的设计和优化提供宝贵的见解,最终提高铁路运营的安全性和可靠性。本文研究了包含干摩擦阻尼的非光滑铁路轮对系统的双参数动力学。通过识别双参数平面上的不同动态响应,全面揭示了关键参数对演化过程复杂性的影响。此外,还讨论了系统的多稳定性和过渡到混沌的各种路径。研究发现,干摩擦在系统中诱发了高度复杂的动力学,包括周期、准周期和混沌运动等一系列行为。这些错综复杂的动态是多个参数(如速度和阻尼系数)相互作用的直接结果,而这些参数对于决定系统的稳定性和性能至关重要。多稳定性的存在使系统进一步复杂化,导致不同运动状态之间不可预测的转换。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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